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HS Code |
245933 |
| Chemicalname | 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate |
| Casnumber | 1029730-45-5 |
| Molecularformula | C6H12BF4N3 |
| Molecularweight | 213.98 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Solubility | Miscible with water |
| Density | 1.29 g/cm³ (approximate) |
| Purity | Typically >98% |
| Storagetemperature | Store at room temperature, keep container tightly closed |
| Iupacname | 1-(1-Aminoethyl)-3-methyl-1H-imidazol-3-ium tetrafluoroborate |
As an accredited 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | White HDPE bottle with secure screw cap, labeled clearly, containing 100 grams of 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate. Includes safety and handling instructions. |
| Shipping | 1-Aminoethyl-3-methylimidazolium tetrafluoroborate is shipped in tightly sealed containers to prevent moisture absorption and contamination. It should be handled as a hazardous chemical, following appropriate shipping regulations, including labeling for corrosive or irritant substances. Transport in compliance with relevant local, national, and international chemical safety guidelines. Store upright, away from incompatible materials. |
| Storage | 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from moisture and incompatible substances such as strong oxidizers. The storage area should be protected from light and labeled clearly. Avoid exposure to excessive heat, and ensure good ventilation to prevent the accumulation of hazardous vapors. |
Applications of 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate in Industrial ManufacturingAs a direct manufacturer of 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate, we provide this ionic liquid for key process applications in the chemical and advanced materials sectors. The following sections detail established industrial uses, compliance frameworks, process integration practices, and targeted end-products, based on actual customer production data and regulatory environments. 1. Electrolyte Additive for Lithium-ion Battery ManufacturingBattery manufacturers utilize this ionic liquid as a thermal-stable, non-volatile electrolyte additive to boost ionic conductivity and enhance cycle life, especially in high-voltage cell designs. Production lines integrate the material during the liquid electrolyte compounding step, optimizing electrolyte viscosity and reducing risk of degradation under high temperatures. Specialists adjust the dosage to balance cycle retention and impedance growth, allowing for custom cell chemistries that meet electric vehicle and energy storage requirements. Each batch must meet stringent impurity thresholds and trace metal controls to ensure safety and reliability in the final battery packs. Industry compliance standards
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2. Solvent in Homogeneous Catalysis for Fine Chemical SynthesisFine chemical producers introduce this ionic liquid as a reaction solvent for metal-catalyzed processes, such as cross-coupling and selective alkylation. Its high polarity stabilizes reactive intermediates, while the non-aqueous environment improves catalyst turnover frequency and product yield. Process engineers monitor impurities and residual water closely to maintain catalyst performance and product purity, implementing validated cleaning and recycling loops for cost efficiency. Safety procedures align with solvent handling regulations due to its flammability and low volatility. Industry compliance standards
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3. Electroplating Bath Component for Metal Surface TreatmentElectroplating facilities employ this ionic liquid as a bath modifier when depositing metals such as gold, silver, and copper onto electrical connectors and microelectronic components. Its inclusion refines grain boundaries and improves plating uniformity, particularly at low temperatures and in high-aspect-ratio features. Plating engineers fine-tune ratios depending on target layer thickness and substrate alloy, integrating real-time bath composition monitoring and post-process ion exchange purification to control impurities and ensure consistent surface quality. Industry compliance standards
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4. Extraction Medium for Biomass FractionationBiorefineries leverage this ionic liquid to selectively solubilize lignin and hemicelluloses during lignocellulosic biomass pretreatment. The approach enables more efficient cellulose recovery for downstream fermentation or polymer processing. Process technologists tailor operating concentrations and mixing regimes for various plant feedstocks, ensuring compliance with environmental discharge norms and recovery of the ionic liquid by antisolvent addition or membrane separation, thereby reducing process costs and improving environmental profiling. Industry compliance standards
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5. Gas Separation Membrane Material ModifierMembrane separation system producers incorporate this ionic liquid as a pore filler or membrane casting medium to tailor gas selectivity in CO₂ capture and hydrogen purification. By adjusting the loading, engineers modulate the physicochemical environment within the polymer matrix, resulting in higher sorption selectivity and mechanical stability. Quality assurance teams regularly test for ionic liquid migration and ensure compatibility with typical process gases. Integration in modular membrane fabrication lines allows for reproducible control over product porosity and separation efficiency. Industry compliance standards
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6. Antistatic Agent in Functional Polymer CompoundingPlastics processors use this ionic liquid as a permanent antistatic component, especially for advanced packaging films and electronic device housings. The chemical structure provides sustained surface conductivity, eliminating charge buildup during high-speed extrusion and forming. Compounders select loading levels by balancing conductivity targets, polymer compatibility, and thermal stability, validated under real production speeds and converting processes. Process controls ensure uniform dispersion, and finished goods meet industry mandates for electrostatic discharge (ESD) safety. Industry compliance standards
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In our work as an industrial chemical manufacturer, we invest a lot of hours turning novel chemistries into real-world materials that advance the way our partners tackle challenges. One molecule, 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate, represents the sort of progress that comes from difficult questions in the lab and patient effort on the factory floor. Over several development cycles, we've tuned our production protocols for this ionic liquid, building on feedback from practicing researchers who require both purity and reliable handling characteristics.
Over the years, our chemists noticed that researchers experimenting with classic imidazolium-based ionic liquids were running into practical hurdles. Some variants triggered unwanted side reactions in organometallic catalysis, and others corroded common reactor surfaces. The need for cleaner, more robust ionic liquids shaped our approach to manufacturing the compound. This particular cation, with its aminoethyl group and methyl substitution, emerged from screening campaigns focused on selective extraction, non-nucleophilic catalysis, and thermal stability.
Years of scale-up taught us which solvents or purification steps compromised the delicate balance between functional group tolerance and ionic strength. By pushing for >99% purity and controlling moisture pickup, the product coming off our line supports glovebox work in both academic and commercial labs. Each lot undergoes NMR verification alongside Karl Fischer titration. We back every drum with traceability all the way to the raw stocks, as unexpected contamination at a fraction of a percent can upset plant or pilot operation downstream.
Some of our earliest projects with this material centered around transition metal complex stabilization, where a clean ionic liquid medium influences rates and selectivity. Our engineers regularly support groups synthesizing low-valent ruthenium, iridium, or nickel complexes, which tend to decompose quickly in conventional solvents or absorb deleterious traces of halide. After switching to our carefully manufactured 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate, these teams report increased catalyst lifetime and fewer shutdowns caused by precipitate fouling.
Others in advanced separation technology approached us looking for an alternative to classic imidazolium salts. For example, the presence of the aminoethyl group makes this ionic liquid uniquely adept at capturing acidic gases or stabilizing anions during phase transfer catalysis. Some traditional imidazolium analogs lack this selectivity, resulting in crossover between organic and aqueous phases. We’ve seen customers reduce mid-process yield loss and cut down on time-consuming post-separation wash cycles. By offering a clean, moisture-controlled product, our manufacturing approach matches the high expectations of environmental technology integrators and chemical engineers alike.
Battery researchers designing next-generation electrolytes have also tapped this salt, which tolerates wide operating temperatures and resists oxidative breakdown. Unlike simple pyrrolidinium or ammonium-based salts, this imidazolium ionic liquid maintains fluidity despite heavy anion content and works at higher voltage windows. Some competitors' materials contain traces of protic impurities that disrupt long-term charge/discharge cycling. Every container that leaves our facility is tested to rule out these instability drivers, allowing cell developers to trust the material for extended programs.
Year after year, we’ve seen the difference that robust process controls make when scaling up ionic liquid production. Many ionic liquids entering the market look nearly identical by basic chemical structure or CAS number. Small departures in manufacturing approach, though, lead to large swings in performance when you move from the bench to a pilot plant or production scale. We invested in modular, closed-reactor setups to bring precise control over exotherm management and minimize contact with ambient air during transfer. Temperature and exclusion of light at specific steps help us avoid side-product formation that conventional “batch and bottle” vendors overlook.
One aspect that changed our approach was a period of unexpected equipment downtime caused by a small lot contaminated with hydrofluoric acid. That setback taught us to re-evaluate every valve and gasket in our fluorinated product streams, re-calibrate acid scavenging procedures, and engage frontline operators in quality sign-off. Our facility hosts real chemists who understand how ionic strength, pH drift, and micro-contaminant carryover can derail an entire campaign. These lessons get applied to every kilo we produce, not only in documentation, but in the materials used for each production run. Factory experience has shaped our bias toward traceable, operator-accessible flowsheets and hands-on inspection at every step of the process.
On paper, the difference between 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate and more familiar tetrafluoroborate salts like 1-Butyl-3-Methylimidazolium appears small. Lab users, though, pick up the distinctions quickly. The presence of the aminoethyl chain brings a basic site capable of engaging in hydrogen bonding, extending the functional window to acid gas capture and basic catalysis that other imidazolium derivatives cannot offer. This extra reactivity aids in stabilizing temporarily generated carbenes, trapping small polar molecules, and modulating the acidity or basicity of a process medium.
Operationally, we've observed this ionic liquid offers a lower melting point than close analogs, so it remains fluid and pourable in plant settings even under unheated storage or winter transshipment. A competitor product based on n-butyl side chains required preheating at customer sites, an energy cost many scaling operations want to avoid. The tetrafluoroborate anion contributes strong resistance against hydrolysis and robust compatibility with a wide range of metals, outperforming chlorate or bromide-based ionic liquids that often etch mild steel, corrode heat exchangers, and demand expensive alloy upgrades for reactor containment.
Product differentiation does not hinge on composition alone. In our experience, some imported alternatives rely on low-cost purification or omit steps to remove volatile organic byproducts. These shortcuts lead to acid or water impurities that slowly accumulate in high-recycle systems. By integrating multi-stage vacuum stripping and dehydration protocols, we protect downstream yield and reduce process interruptions for users who depend on extremely dry, stable product. We offer a transparent impurity profile on every shipment, leveraging direct process feedback to refine not only batch scale, but the exact order of purification stages in our facility.
In the field, improvements flagged by customers drive our priorities for process optimization as much as structure-activity relationships in the lab. One pharmaceutical customer wanted to use 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate as a supporting electrolyte for a carbon-carbon coupling in bench screening. After switching from a chloride-based ionic liquid, their reaction yield jumped by more than 20%, and the workup became easier. A plant engineer on their team traced the change to fewer halide-induced side reactions, less catalyst poisoning, and better product isolation. We incorporated their data into our technical notes and modified our sales batches to match the precise dryness level that worked best in their process.
Another example from the semiconductor industry came from a customer working on surface passivation. They wanted an ionic medium that held up in plasma reactors without forming organohalide byproducts, a failure they found common with other mid-tier alternatives. Our product offered the required thermal range and purity, allowing them to achieve consistent etch rates and stable resist development, saving hours of equipment cleaning and re-validation per month. Based on their input, we tightened our quality specs for trace organic residues, and officers from our shop traveled directly to their site to troubleshoot and confirm the results on their lines.
Energy storage clients running battery evaluation platforms have given us detailed charge/discharge data proving the superior oxidative resilience and electrochemical stability window of our material. Unlike in-house synthesized competitors, which often fail at the edges of voltage or temperature specs, our manufactured product sustains uniform performance from the first cycle to accelerated life testing. Their repeat business provides direct proof of value for both the technical dimensions and reliability of our chemical supply stream.
Stories from our shop floor show the reality of making and packing liters—or tons—of specialty ionic liquids for real-world customers. We maintain strict environmental controls: overhead scrubbers, isolation from moisture, and PPE protocols based on documented occupational health studies. Our vacuum dryers and nitrogen-purged lines eliminate contamination from humidity that could degrade product in months-long storage or ocean transport.
A big part of our training regimen centers on transfer procedures. When handling 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate, plant staff follow routine checkpoints for exposure control, because trace exposure or accidental mixing during filling events can create work hazards or contaminate the product. By building these operational barriers, we provide not just a high-quality product, but a process that truly supports worker safety and customer uptime.
The same quality assurance regime that protects process integrity also shields our customers from liability concerns in regulated environments. Stage-by-stage documentation and chain-of-custody protocols mean any question about content, impurity level, or manufacturing detail can be traced in full, down to the specific operator shift. This transparency drives continuous improvement; when a batch falls outside our spec (even if within most industry tolerances), we document root causes, address them with operator retraining or maintenance upgrades, and share non-confidential lessons learned in our technical updates.
Beyond technical and safety requirements, we view ourselves as both partner and guide for industrial clients and academic innovators. Whether supporting lab reagent sales by the milliliter or full-scale commodity shipments, we translate frontline manufacturing expertise into actionable guidance for customers undertaking new process developments. We never withhold feedback; if a lot shows any risk of off-spec composition, we communicate with partners before orders even ship. Suggestions for alternate storage, or trial packs for process mapping, are common services that come built into our relationship with each client.
Our attention to production detail hasn’t gone unrecognized. Some collaborators noted that the hands-on approach—regular direct communication between technical staff, not just order handlers—reduced ramp-up times for technology transfer. By avoiding generic, one-size-fits-all product information and committing to batch-specific transparency, we stay ahead of shifting supply chain regulations, local safety mandates, and ongoing environmental reviews that sometimes emerge out of new applications.
Even after years of steady production, our R&D and manufacturing teams keep a close eye on market signals and science news. Surging demands for ‘greener’ solvents, circular chemistry, or energy-efficient separations present newer technical targets that our product can help address. Enthusiasm for ionic liquids as recyclable alternatives to volatile organics has pushed us to extend the life cycle of our process solvents, minimizing waste and exploring in-house recycling where viable. These changes arise from live feedback, not just regulatory pressure. Technicians in our plant hold regular debriefs with partners in adjacent industries, always searching for overlooked improvements in handling, packaging, or reprocessing.
As newer catalytic and electrochemical strategies require more specialized solvent systems, the unique structure of 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate proves to meet process goals where legacy solvents fall short. We see clear opportunities supporting upgrades for everything from grid-scale energy storage to continuous pharmaceutical manufacturing, where flexibility, reproducibility, and safety are not just ideal—they’re baseline expectation.
Day after day, customers, partners, and our own team rely on direct answers, accurate specs, and open-door communication. Experience with setbacks and customer feedback shapes our work as much as new literature or regulatory notices. Feedback loops run directly from the field—engineers, plant operators, or academic scientists—into our manufacturing refinements, new quality checkpoints, and support documentation.
Practical manufacturing knowledge matters just as much as molecular diagrams or spec sheets. By anchoring our practices in day-to-day operational data, hands-on batch management, and transparent channels for customer input, we ensure that the promise of 1-Aminoethyl-3-Methylimidazolium Tetrafluoroborate reaches your bench or facility exactly as intended. Our goal remains simple: to supply a tailored, high-integrity product that delivers not only on chemical performance, but on the trust our partners put in us as their chosen manufacturer.